{"id":2126,"date":"2021-04-06T09:07:28","date_gmt":"2021-04-06T09:07:28","guid":{"rendered":"https:\/\/wldstainless.com\/?p=2126"},"modified":"2021-04-06T09:09:30","modified_gmt":"2021-04-06T09:09:30","slug":"how-the-nitrogen-affect-316ln-stainless-steel","status":"publish","type":"post","link":"https:\/\/wldstainless.com\/es\/how-the-nitrogen-affect-316ln-stainless-steel\/","title":{"rendered":"\u00bfC\u00f3mo afecta el nitr\u00f3geno al acero inoxidable 316LN?"},"content":{"rendered":"<p>316LN es la versi\u00f3n basada en la adici\u00f3n de nitr\u00f3geno <a href=\"https:\/\/wldstainless.com\/materials\/austenitic-stainless-steel\/316-316l-stainless-steel\/\">Acero 316L<\/a> (0,06% ~ 0,08%), de manera que tenga las mismas caracter\u00edsticas que el acero inoxidable 316L. Se ha utilizado en la fabricaci\u00f3n de componentes estructurales de alta temperatura en reactores de enriquecimiento r\u00e1pido (FBRS). La reducci\u00f3n del contenido de carbono reduce considerablemente la susceptibilidad a la fisuraci\u00f3n por corrosi\u00f3n debido a la soldadura en entornos corrosivos posteriores. La interacci\u00f3n entre el escalamiento, la fatiga de bajo ciclo y el escalamiento son las consideraciones m\u00e1s importantes para los componentes de los reactores de enriquecimiento r\u00e1pido. La resistencia a altas temperaturas de estos componentes es muy superior a la del acero inoxidable 316L. <a href=\"https:\/\/wldstainless.com\/materials\/austenitic-stainless-steel\/316-316l-stainless-steel\/\">Acero inoxidable 316L<\/a> Se puede mejorar el acero inoxidable 316 mediante la aleaci\u00f3n 0.06% de ~0,08% N. En este art\u00edculo se analizar\u00e1 la influencia del contenido de nitr\u00f3geno superior a 0,08% en las propiedades mec\u00e1nicas del acero inoxidable 316L a alta temperatura.<\/p>\n<p>&nbsp;<\/p>\n<p><strong>Composici\u00f3n qu\u00edmica del acero inoxidable 316LN<\/strong><\/p>\n<table>\n<tbody>\n<tr>\n<td width=\"77\">Horno<\/td>\n<td width=\"77\">N<\/td>\n<td width=\"77\">C<\/td>\n<td width=\"77\">Mn<\/td>\n<td width=\"77\">Cr<\/td>\n<td width=\"77\">Mo<\/td>\n<td width=\"77\">No<\/td>\n<td width=\"77\">S\u00ed<\/td>\n<td width=\"77\">S<\/td>\n<td width=\"77\">P<\/td>\n<td width=\"77\">Fe<\/td>\n<\/tr>\n<tr>\n<td width=\"77\">Normas<\/td>\n<td width=\"77\">0.06-0.22<\/td>\n<td width=\"77\">0.02-0.03<\/td>\n<td width=\"77\">1.6-2.0<\/td>\n<td width=\"77\">17-18<\/td>\n<td width=\"77\">2.3-2.5<\/td>\n<td width=\"77\">12.0-12.5<\/td>\n<td width=\"77\">\u22640.5<\/td>\n<td width=\"77\">\u22640.01<\/td>\n<td width=\"77\">\u22640.03<\/td>\n<td width=\"77\">&#8211;<\/td>\n<\/tr>\n<tr>\n<td width=\"77\">1<\/td>\n<td width=\"77\">0.07<\/td>\n<td width=\"77\">0.027<\/td>\n<td width=\"77\">1,7<\/td>\n<td width=\"77\">17.53<\/td>\n<td width=\"77\">2.49<\/td>\n<td width=\"77\">12.2<\/td>\n<td width=\"77\">0.22<\/td>\n<td width=\"77\">0.0055<\/td>\n<td width=\"77\">0.013<\/td>\n<td width=\"77\">&#8211;<\/td>\n<\/tr>\n<tr>\n<td width=\"77\">2<\/td>\n<td width=\"77\">0.11<\/td>\n<td width=\"77\">0.033<\/td>\n<td width=\"77\">1.78<\/td>\n<td width=\"77\">17.63<\/td>\n<td width=\"77\">2.51<\/td>\n<td width=\"77\">12.27<\/td>\n<td width=\"77\">0.21<\/td>\n<td width=\"77\">0.0055<\/td>\n<td width=\"77\">0.015<\/td>\n<td width=\"77\">&#8211;<\/td>\n<\/tr>\n<tr>\n<td width=\"77\">3<\/td>\n<td width=\"77\">0.14<\/td>\n<td width=\"77\">0.025<\/td>\n<td width=\"77\">1.74<\/td>\n<td width=\"77\">17.57<\/td>\n<td width=\"77\">2.53<\/td>\n<td width=\"77\">12.15<\/td>\n<td width=\"77\">0.20<\/td>\n<td width=\"77\">0.0041<\/td>\n<td width=\"77\">0.017<\/td>\n<td width=\"77\">&#8211;<\/td>\n<\/tr>\n<tr>\n<td width=\"77\">4<\/td>\n<td width=\"77\">0.22<\/td>\n<td width=\"77\">0.028<\/td>\n<td width=\"77\">1.70<\/td>\n<td width=\"77\">17.57<\/td>\n<td width=\"77\">2.54<\/td>\n<td width=\"77\">12.36<\/td>\n<td width=\"77\">0.20<\/td>\n<td width=\"77\">0.0055<\/td>\n<td width=\"77\">0.018<\/td>\n<td width=\"77\">&#8211;<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p>Estos cuatro lotes de acero inoxidable 316LN con un contenido de nitr\u00f3geno de 0,07%, 0,11%, 0,14% y 0,22, y un contenido de carbono de 0,03%%, fueron sometidos a pruebas para estudiar los efectos del nitr\u00f3geno en las propiedades de tracci\u00f3n, fluencia, fatiga de bajo ciclo y fluencia-fatiga del acero inoxidable 316LN. El objetivo de este experimento es encontrar el contenido de nitr\u00f3geno \u00f3ptimo para obtener la mejor combinaci\u00f3n de propiedades de tracci\u00f3n, fluencia y fatiga de bajo ciclo. Los resultados experimentales muestran que el nitr\u00f3geno puede mejorar la resistencia a la tracci\u00f3n, la fluencia y la fatiga del acero inoxidable austen\u00edtico. Las razones para este aumento de la resistencia incluyen la mejora de la soluci\u00f3n, la reducci\u00f3n de la energ\u00eda de fallo de empalme (SFE), el endurecimiento por precipitaci\u00f3n, la formaci\u00f3n de compuestos (solutos intersticiales), la segregaci\u00f3n at\u00f3mica y el endurecimiento ordenado. Debido a sus diferentes propiedades de intercambio de electrones, el nitr\u00f3geno disuelto en el acero inoxidable austen\u00edtico tiene un volumen de expansi\u00f3n mayor que el del carbono.<\/p>\n<p>Adem\u00e1s de la interacci\u00f3n el\u00e1stica entre el nitr\u00f3geno y las dislocaciones, la interacci\u00f3n electrost\u00e1tica intersticial de las dislocaciones tambi\u00e9n influye en la resistencia. Los n\u00facleos de dislocaci\u00f3n se caracterizan por la ausencia de electrones libres, lo que significa que tienen una carga positiva. Los \u00e1tomos de nitr\u00f3geno en los aceros inoxidables austen\u00edticos est\u00e1n cargados negativamente debido a la posici\u00f3n de los electrones libres cerca de los \u00e1tomos de nitr\u00f3geno y a la interacci\u00f3n electrost\u00e1tica entre las dislocaciones y los \u00e1tomos de nitr\u00f3geno.<\/p>\n<p>La energ\u00eda de enlace efectiva entre el \u00e1tomo de nitr\u00f3geno y la dislocaci\u00f3n aumenta con el aumento del contenido de nitr\u00f3geno en el acero austen\u00edtico, pero la correlaci\u00f3n no es evidente para el carbono. En los aceros austen\u00edticos, el nitr\u00f3geno intersticial interact\u00faa con los elementos sustituyentes y tiende a formar composiciones at\u00f3micas de sustituyentes intersticiales. El compuesto se une f\u00e1cilmente a los elementos situados a la izquierda del hierro en la tabla peri\u00f3dica, como Mn, Cr, Ti y V. Existe una fuerte correlaci\u00f3n entre las propiedades de la uni\u00f3n interat\u00f3mica (es decir, la orientaci\u00f3n versus la no orientaci\u00f3n) y la proximidad de los \u00e1tomos adyacentes en un sistema de aleaci\u00f3n multicomponente. La uni\u00f3n entre los \u00e1tomos met\u00e1licos facilita la ordenaci\u00f3n de corto alcance, que es la uni\u00f3n de \u00e1tomos de elementos diferentes. La polarizaci\u00f3n interat\u00f3mica facilita el intercambio de electrones covalentes, la uni\u00f3n entre los \u00e1tomos del mismo elemento. El carbono promueve la agregaci\u00f3n de \u00e1tomos de sustituci\u00f3n en la soluci\u00f3n s\u00f3lida basada en hierro, mientras que el nitr\u00f3geno facilita la ordenaci\u00f3n a corto alcance.<\/p>\n<p>En general, la resistencia a la tracci\u00f3n (YS) y la resistencia a la tracci\u00f3n final (UTS) de <a href=\"https:\/\/wldstainless.com\/materials\/austenitic-stainless-steel\/316-316l-stainless-steel\/\">316L<\/a> El acero inoxidable se mejora significativamente mediante la aleaci\u00f3n de 0,07% ~ 0,22% de nitr\u00f3geno. Se observ\u00f3 un aumento de la resistencia en todos los ensayos en el intervalo de temperatura de 300 ~ 1123 K. Se observ\u00f3 un envejecimiento din\u00e1mico por deformaci\u00f3n dentro de un rango de temperatura limitado. El rango de temperatura del envejecimiento din\u00e1mico por deformaci\u00f3n (DSA) disminuye con el aumento del contenido de nitr\u00f3geno.<\/p>\n<p>&nbsp;<\/p>","protected":false},"excerpt":{"rendered":"<p>316LN is the Nitrogen addition version based on 316L steel (0.06% ~ 0.08%), so that it has the same characteristics as 316L, \u00a0has been used in the manufacture of high-temperature structural components in fast breeder reactor (FBRS). Reducing the carbon content greatly reduces the susceptibility to stress corrosion cracking due to welding in subsequent corrosive [&hellip;]<\/p>","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[1],"tags":[],"class_list":["post-2126","post","type-post","status-publish","format-standard","hentry","category-social-activities"],"aioseo_notices":[],"aioseo_head":"\n\t\t<!-- All in One SEO 5.0.1.1 - aioseo.com -->\n\t<meta name=\"description\" content=\"316LN is the Nitrogen addition version based on 316L steel (0.06% ~ 0.08%), so that it has the same characteristics as 316L, has been used in the manufacture of high-temperature structural components in fast breeder reactor (FBRS).\" \/>\n\t<meta name=\"robots\" content=\"max-image-preview:large\" \/>\n\t<meta name=\"author\" content=\"WLD Stainless\"\/>\n\t<link rel=\"canonical\" href=\"https:\/\/wldstainless.com\/es\/how-the-nitrogen-affect-316ln-stainless-steel\/\" \/>\n\t<meta name=\"generator\" content=\"All in One SEO (AIOSEO) 5.0.1.1\" \/>\n\t\t<script type=\"application\/ld+json\" class=\"aioseo-schema\">\n\t\t\t{\"@context\":\"https:\\\/\\\/schema.org\",\"@graph\":[{\"@type\":\"Article\",\"@id\":\"https:\\\/\\\/wldstainless.com\\\/es\\\/how-the-nitrogen-affect-316ln-stainless-steel\\\/#article\",\"name\":\"How the Nitrogen affect 316LN stainless steel? 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